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Chapter 13 - Pulmonary edema

from Section 2 - Basic science

Published online by Cambridge University Press:  05 June 2016

Robert G. Hahn
Affiliation:
Linköpings Universitet, Sweden
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Publisher: Cambridge University Press
Print publication year: 2016

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References

Prichard, JS. Pulmonary edema. In: Weatherhall, DJ, Ledingham, JGG, Warrel, DA, eds. Oxford Textbook of Medicine. 3rd edn. Oxford/New York/Tokyo: Oxford University Press, 1996: 2495–505.Google Scholar
Guyton, AO, Lindsey, AW. Effect of elevated left atrial pressure and decreased plasma protein concentration upon the development of pulmonary edema. Circ Res 1959; 7: 649–57.CrossRefGoogle ScholarPubMed
Blomqvist, H, Wickerts, CJ, Berg, B, et al. Does PEEP facilitate the resolution of extravascular lung water after experimental hydrostatic pulmonary edema? Eur Respir J 1991; 4: 1053–9.CrossRefGoogle Scholar
Bernard, GR, Artigas, A, Brigham, KL, et al. and the Consensus Committee. The American-European Consensus Conference on ARDS: definitions, mechanisms, relevant outcomes and clinical trial coordination. Am J Respir Crit Care Med 1994; 149: 818–24.CrossRefGoogle ScholarPubMed
Luhr, O, Aardal, S, Nathorst-Westfelt, U, et al. Pulmonary function in adult survivors of severe acute lung injury treated with inhaled nitric oxide. Acta Anaesthesiol Scand 1998; 42: 391–8.CrossRefGoogle ScholarPubMed
Linden, V, Palmer, K, Reinhard, J, et al. High survival in adult patients with acute respiratory distress syndrome treated by extracorporeal membrane oxygenation, minimal sedation, and pressure supported ventilation. Intensive Care Med 2000; 26: 1630–7.CrossRefGoogle ScholarPubMed
Frostell, C, Blomqvist, H, Hedenstierna, G, Pieper, R. Thoracic and abdominal lymph drainage in relation to mechanical ventilation and PEEP. Acta Anaesthesiol Scand 1987; 31: 405–12.CrossRefGoogle ScholarPubMed
Staub, NC. State of the art review. Pathogenesis of pulmonary edema. Am Rev Respir Dis 1974; 109: 358–72.Google ScholarPubMed
Brigham, KL, Meyrick, B. Endotoxin and lung injury. Am Rev Respir Dis 1986; 133: 913–27.Google ScholarPubMed
Slutsky, AS. Consensus Conference on mechanical ventilation – Jan 28–30, 1993 at Northbrook, Illinois, USA. Part 2. Intensive Care Med 1994; 20: 15062.CrossRefGoogle ScholarPubMed
Kolobow, T, Moretti, MP, Fumagalli, R, et al. Severe impairment in lung function induced by high peak airway pressure during mechanical ventilation. An experimental study. Am Rev Respir Dis 1987; 135: 312–15.Google ScholarPubMed
Webb, HH, Tierney, DF. Experimental pulmonary edema due to intermittent positive pressure ventilation with high inflation pressures. Protection by positive end-expiratory pressure. Am Rev Respir Dis 1974; 110: 556–65.Google ScholarPubMed
Dreyfuss, D, Saumon, G. Lung overinflation. Physiologic and anatomic alterations leading to pulmonary edema. In: Zapol, WM, Lemaire, F, eds. Adult Respiratory Distress Syndrome. New York: Marcel Dekker Inc, 1991: 433–49.Google Scholar
West, JB, Mathieu-Costello, O. Stress failure of pulmonary capillaries: role in lung and heart disease. Lancet 1992; 340: 762–7.CrossRefGoogle ScholarPubMed
Wickerts, CJ, Berg, B, Frostell, C, et al. Influence of hypertonic-hyperoncotic solution and furosemide on extravascular lung water resorption in canine hydrostatic pulmonary edema. J Physiol 1992; 458: 425–38.CrossRefGoogle Scholar
Matthay, MA, Wiener-Kronish, JP. Pleural effusions associated with hydrostatic and increased permeability pulmonary edema. Chest 1988; 93: 852–8.Google Scholar
Miniati, M, Parker, JC, Pistolesi, M, et al. Reabsorption kinetics of albumin from pleural space of dogs. Am J Physiol 1988; 255: H375–85.Google ScholarPubMed
Blomqvist, H, Berg, B, Frostell, C, Wickerts, C-J, Hedenstierna, G. Net fluid leakage (LN) in experimental pulmonary edema in the dog. Acta Anaesthesiol Scand 1990; 34: 377–83.CrossRefGoogle ScholarPubMed
Matthay, MA, Wiener-Kronish, JP. Intact epithelial barrier function is critical for the resolution of alveolar edema in humans. Am Rev Respir Dis 1990; 142: 1250–7.CrossRefGoogle ScholarPubMed
Staub, NC. What's new in pulmonary edema research? In Recent Advances in Anaesthesia, Pain, Intensive Care and Emergency. APICE 1987, Trieste: 39.Google Scholar
Blomqvist, H, Frostell, C, Pieper, R, Hedenstierna, G. Measurement of dynamic lung fluid balance in the mechanically ventilated dog. Theory and results. Acta Anaesthesiol Scand 1990; 34: 370–6.CrossRefGoogle ScholarPubMed
Calandrino, FSJ, Anderson, DJ, Mintun, MA, Schuster, DP. Pulmonary vascular permeability during the adult respiratory distress syndrome: a positron emission tomographic study. Am Rev Respir Dis 1988; 138: 421–8.CrossRefGoogle ScholarPubMed
Schuster, DP. What is acute lung injury? What is ARDS? Chest 1995; 107: 1721–6.CrossRefGoogle ScholarPubMed
Palazzo, R, Hamvas, A, Shuman, T, et al. Injury in nonischemic lung after unilateral pulmonary ischemia with reperfusion. J Appl Physiol 1992; 72: 612–20.CrossRefGoogle ScholarPubMed
Sandiford, P, Province, MA, Schuster, DP. Distribution of regional density and vascular permeability in the adult respiratory distress syndrome. Am J Respir Crit Care Med 1995; 151: 737–42.CrossRefGoogle ScholarPubMed
Jones, HA, Clark, JC, Minhas, PS, et al. Pulmonary neutrophil activation following head trauma (abstract). Am J Respir Crit Care Med 1998; 157: A349.Google Scholar
Jones, HA, Cadwallader, KA, White, JF, et al. Dissociation between respiratory burst activity and deoxyglucose uptake in human neutrophil granulocytes: implications for interpretation of (18)F-FDG PET images. J Nucl Med 2002; 43: 652–7.Google ScholarPubMed
de Prost, N, Costa, EL, Wellman, T, et al. Effects of surfactant depletion on regional pulmonary metabolic activity during mechanical ventilation. J Appl Physiol 2011; 111: 1249–58.CrossRefGoogle ScholarPubMed
Costa, ELV, Musch, G, Winkler, T, et al. Mild endotoxemia during mechanical ventilation produces spatially heterogeneous pulmonary neutrophilic inflammation in sheep. Anesthesiology 2010; 112: 658–69.CrossRefGoogle ScholarPubMed
Chen, DL, Schuster, DP. Positron emission tomography with [18F]fluorodeoxyglucose to evaluate neutrophil kinetics during acute lung injury. Am J Physiol Lung Cell Mol Physiol 2004; 286: L834–40.CrossRefGoogle ScholarPubMed
Borges, JB, Costa, ELV, Suarez-Sipmann, F, et al. Early inflammation mainly affects normally and poorly aerated lung in experimental ventilator-induced lung injury*. Crit Care Med 2014; 42: e279–87.CrossRefGoogle ScholarPubMed
Lattuada, M, Hedenstierna, G. Abdominal lymph flow in an endotoxin sepsis model: influence of spontaneous breathing and mechanical ventilation. Crit Care Med 2006; 34: 2792–8.CrossRefGoogle Scholar
Zambon, M, Mont, GI, Landoni, G. Outcome of patients with acute respiratory distress syndrome: causes of death, survival rates and long-term complications. In: Vincent, JL, ed. Annual Update in Intensive Care and Emergency Medicine. Berlin: Springer, 2014: 245–53.Google Scholar
Lattuada, M, Bergquist, M, Maripuu, E, Hedenstierna, G. Mechanical ventilation worsens abdominal edema and inflammation in porcine endotoxemia. Crit Care 2013; 17: R126.CrossRefGoogle ScholarPubMed
Amato, MB, Meade, MO, Slutsky, AS, Brochard, L. Driving pressure and survival in the acute respiratory distress syndrome. N Engl J Med 2015; 372: 747–55.CrossRefGoogle ScholarPubMed

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